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Author Spotlight: Unveiling the Role of TMOD3 in Platinum Resistance and Immune Infiltration in Ovarian Cancer
Published on: August 2, 2024
Cisplatin binding to angiogenin protein: new molecular pathways and targets for the drug's anticancer activity
Giarita Ferraro1, Vanessa Sanfilippo2, Lorenzo Chiaverini3
1Department of Chemical Sciences, University of Naples Federico II, via Cintia 21, I-80126 Napoli, Italy. antonello.merlino@unina.it.
Abstract:
Cisplatin (CisPt), a platinum-based chemotherapeutic widely used in the treatment of various cancers, has multiple mechanisms of action, including nuclear DNA (nDNA) and mitochondrial DNA (mDNA) damage and cytoskeletal perturbations affecting, in turn, the membrane transporter activity. CisPt binding to proteins and enzymes may modulate its biochemical mechanism of action and is associated with cancer cell resistance to the drug. In this work, we investigate the interaction between cisplatin and angiogenin (Ang), a protein strongly expressed in many types of cancer and a potent angiogenic factor. The adduct formed upon reaction of CisPt with Ang (Ang@CisPt) was characterized by X-ray crystallography to evidence the exact platination site and by UV-visible (UV-vis) absorption and circular dichroism (CD) spectroscopies to shed light on any possible change in the protein conformation. Furthermore, high-resolution electrospray ionization (ESI) mass spectrometry was utilized to evaluate the Ang : CisPt stoichiometry of the Ang@CisPt adduct. The effect of the Ang@CisPt adduct on a prostate cancer cell line (PC-3) was tested by colorimetric assays in terms of cell viability, at both levels of nuclear and mitochondrial damage, and reactive oxygen species (ROS) production. Cellular imaging by laser scanning confocal microscopy (LSM) was utilized to scrutinize the cytoskeleton actin reorganization and the lysosome and mitochondria organelle perturbation. These studies highlight the possibility of new molecular pathways and targets for CisPt activity.
Insights
This study explores how cisplatin interacts with angiogenin, a cancer-related protein. The resulting complex affects cancer cell viability and introduces new possibilities for cisplatin
Area of Science:
- Biochemistry and Molecular Biology
- Cancer Research
- Structural Biology
Background:
- Cisplatin (CisPt) is a platinum-based chemotherapy drug targeting cancer cells via DNA damage and cytoskeletal changes.
- Protein interactions can influence CisPt's efficacy and lead to drug resistance.
- Angiogenin (Ang) is a protein overexpressed in many cancers, promoting angiogenesis.
Purpose of the Study:
- To investigate the interaction between cisplatin and angiogenin.
- To characterize the resulting cisplatin-angiogenin adduct (Ang@CisPt).
- To evaluate the biological effects of the Ang@CisPt adduct on prostate cancer cells.
Main Methods:
- X-ray crystallography to determine the platination site on Angiogenin.
- UV-visible absorption and circular dichroism spectroscopies to assess conformational changes.
- Electrospray ionization mass spectrometry for stoichiometry analysis.
- Colorimetric assays and laser scanning confocal microscopy to evaluate cellular effects on PC-3 prostate cancer cells.
Main Results:
- The precise binding site of Cisplatin on Angiogenin was identified.
- The Ang@CisPt adduct formation induced changes in protein conformation.
- The adduct impacted prostate cancer cell viability, mitochondrial damage, ROS production, and cytoskeletal organization.
Conclusions:
- Cisplatin can form a characterized adduct with angiogenin.
- This Ang@CisPt adduct exhibits cytotoxic effects on prostate cancer cells.
- The findings suggest novel molecular pathways and potential therapeutic targets for cisplatin-based cancer treatments.
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